Conditional template specialization on method of a non template class
Question
I am trying to use boost::enable_if to conditional specialize a method of a non-templated class, but failing at it.
//OSSpecific.h
...
//If some OS
typedef unsigned int UINT;
//else
typedef unsigned long long UINT;
...
//Foo.h
...
#include <OSSpecific.h>
...
class Foo
{
public:
...
template <typename T>
returnThis<T>* bar();
}
/******************************************************************/
//Foo.cpp
...
template<>
returnThis<float>* bar()
{
}
//Use this if some condition is true
template<>
returnThis<int>* Foo::bar<boost::disable_if_c<boost::is_same<int, UINT>::value >::type>()
{
//Do something
}
//Use this if some condition is true
template<>
returnThis<long long>* Foo::bar<boost::disable_if_c<boost::is_same<long long, UINT>::value >::type>()
{
//Do something
}
I get the following error:
Foo.cpp : error C2785: 'returnType<T> *Foo::bar(void)' and 'returnType<T> *Foo::bar(void)' have different return types
with
[
T=int
]
Foo.h : see declaration of 'Foo::bar'
Foo.cpp : see declaration of 'Foo::bar'
Foo.cpp : error C2910: 'Foo::bar' : cannot be explicitly specialized
Any pointers where I am going wrong?
EDIT : I tried to simplify my question too much. Adding more relevant detail.
1 answers
solution1
1 ACCPTED 2015-03-09 17:21:08
You must follow ODR - one definition rule. So you have to have declarations of your functions also in header file.
To use SFINAE your functions need to be template functions - not fully specialized template functions - but couple of different template functions.
So - see header file. Note that you have 3 different functions here - they are not specializations of each others. Thanks to SFINAE first is only active if T==float . 2nd and 3rd if T==UINT - and the distinction between them is this condition: UINT==unsigned int .
class Foo
{
public:
template <typename T>
typename boost::enable_if<boost::is_same<T,float>,returnThis<float>*>::type
bar();
template <typename T>
typename boost::enable_if_c<boost::is_same<T,UINT>::value and boost::is_same<UINT,unsigned int>::value,
returnThis<UINT>*>::type
bar();
template <typename T>
typename boost::enable_if_c<boost::is_same<T,UINT>::value and not boost::is_same<UINT,unsigned int>::value,
returnThis<UINT>*>::type
bar();
};
Then possible usage file:
int main() {
Foo f;
f.bar<float>();
f.bar<UINT>();
return 0;
}
If UINT==unsigned int this code will call 1st and 2nd functions. If UINT!=usinged int the 1st and 3rd functions will be called.
Then your source file (Foo.cpp):
template <typename T>
typename boost::enable_if<boost::is_same<T,float>,returnThis<float>*>::type
Foo::bar()
{
cout << "bar<T==float>()\n";
return 0;
}
template <typename T>
typename boost::enable_if_c<boost::is_same<T,UINT>::value and boost::is_same<UINT,unsigned int>::value,
returnThis<UINT>*>::type
Foo::bar()
{
cout << "bar<T==UINT and UINT==usigned int>()\n";
return 0;
}
template <typename T>
typename boost::enable_if_c<boost::is_same<T,UINT>::value and not boost::is_same<UINT,unsigned int>::value,
returnThis<UINT>*>::type
Foo::bar()
{
cout << "bar<T==UINT and UINT!=usigned int>()\n";
return 0;
}
Since these functions do not actually depends on T - you can require from compiler to have generated code in your dedicated cpp file by template explicit instantiation instructions:
template returnThis<float>* Foo::bar<float>();
template returnThis<UINT>* Foo::bar<UINT>();
The technical post webpages of this site follow the CC BY-SA 4.0 protocol. If you need to reprint, please indicate the site URL or the original address.Any question please contact:yoyou2525@163.com.